Spatial-Temporal Parallel Transformer for Arm-Hand Dynamic Estimation
Shuying Liu, Wenbin Wu, Jiaxian Wu, Yue Lin
摘要
We propose an approach to estimate arm and hand dynamics from monocular video by utilizing the relationship between arm and hand. Although monocular full human motion capture technologies have made great progress in recent years, recovering accurate and plausible arm twists and hand gestures from in-the-wild videos still remains a challenge. To solve this problem, our solution is proposed based on the fact that arm poses and hand gestures are highly correlated in most real situations. To fully exploit arm-hand correlation as well as inter-frame information, we carefully design a Spatial-Temporal Parallel Arm-Hand Motion Transformer (PAHMT) to predict the arm and hand dynamics simultaneously. We also introduce new losses to encourage the estimations to be smooth and accurate. Besides, we collect a motion capture dataset including 200K frames of hand gestures and use this data to train our model. By integrating a 2D hand pose estimation model and a 3D human pose estimation model, the proposed method can produce plausible arm and hand dynamics from monocular video. Extensive evaluations demonstrate that the proposed method has advantages over previous state-of-the-art approaches and shows robustness under various challenging scenarios.
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引用它的顶会 Paper5
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- Coordinate Transformer: Achieving Single-stage Multi-person Mesh Recovery from VideosHaoyuan Li, Haoye Dong, Hanchao Jia, Dong Huang 等ICCV 2023 · 被引用 8 次
- EgoForce: Forearm-Guided Camera-Space 3D Hand Pose from a Monocular Egocentric CameraChristen Millerdurai, Shaoxiang Wang, Yaxu Xie, Vladislav Golyanik 等SIGGRAPH 2026
- Overcoming the TradeOff between Accuracy and Plausibility in 3D Hand Shape ReconstructionZiwei Yu, Chen Li, Linlin Yang, Xiaoxu Zheng 等CVPR 2023
- Recovering 3D Hand Mesh Sequence from a Single Blurry Image: A New Dataset and Temporal UnfoldingYeonguk Oh, JoonKyu Park, Jaeha Kim, Gyeongsik Moon 等CVPR 2023
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